Homogeneous 2D/3D heterostructured tin halide perovskite photovoltaics

IF 38.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Dongxu He, Peng Chen, Julian A. Steele, Zhiliang Wang, Hongyi Xu, Meng Zhang, Shanshan Ding, Chengxi Zhang, Tongen Lin, Felipe Kremer, Hongzhe Xu, Mengmeng Hao, Lianzhou Wang
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Abstract

Tin halide perovskites (THPs) have emerged as promising lead-free candidates for eco-friendly perovskite solar cells, but their photovoltaic performance still lags behind that of lead-based counterparts due to poor thin-film quality. Constructing two-dimensional/three-dimensional (2D/3D) heterostructures can effectively regulate crystallization and suppress defect formation for developing high-quality THP thin films. However, the high aggregation barrier prevents large 2D perovskite colloids from forming stable clusters, making 2D THPs nucleate more slowly than their 3D analogues. Such distinct nucleation kinetics cause undesirable 2D/3D phase segregation that compromises both photovoltaic performance and device durability. Here we introduce small inorganic caesium cations to partially replace bulky organic cations in the electrical double layers of 2D THP colloids, reducing the colloid size to lower their aggregation barrier. The reduced electrostatic repulsion promotes the coagulation of 2D and 3D THP colloids in the precursor solution, synchronizing their nucleation kinetics for the growth of 2D/3D heterostructured THP thin films with a homogeneous microstructure and markedly reduced trap states. Consequently, the caesium-incorporated THP solar cells deliver an excellent power conversion efficiency of 17.13% (certified 16.65%) and exhibit stable operation under continuous one-sun illumination for over 1,500 h in nitrogen without encapsulation. This study offers new insights into the colloidal chemistry and crystallization engineering of mixed-dimensional heterostructures, paving the way for high-performance lead-free perovskite photovoltaics.

Abstract Image

均质2D/3D异质结构卤化锡钙钛矿光伏电池
卤化锡钙钛矿(THPs)已成为环保钙钛矿太阳能电池的无铅候选者,但由于薄膜质量差,其光伏性能仍落后于铅基电池。构建二维/三维(2D/3D)异质结构可以有效调节THP薄膜的结晶和抑制缺陷的形成。然而,高聚集屏障阻止了大的二维钙钛矿胶体形成稳定的团簇,使得二维THPs的成核速度比三维类似物慢。这种不同的成核动力学会导致不理想的2D/3D相分离,从而影响光伏性能和器件耐用性。在这里,我们引入了小的无机铯阳离子来部分取代二维THP胶体电双层中的大块有机阳离子,减少了胶体的尺寸,降低了它们的聚集屏障。静电斥力的降低促进了2D和3D THP胶体在前驱体溶液中的凝聚,同步了它们的成核动力学,从而生长出具有均匀微观结构和显著降低陷阱态的2D/3D异质结构THP薄膜。因此,含铯THP太阳能电池提供了17.13%的优异功率转换效率(认证为16.65%),并且在无封装的氮气中连续一个太阳照射超过1500小时时表现出稳定的运行。该研究为混合维异质结构的胶体化学和结晶工程提供了新的见解,为高性能无铅钙钛矿光伏发电铺平了道路。
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来源期刊
Nature nanotechnology
Nature nanotechnology 工程技术-材料科学:综合
CiteScore
59.70
自引率
0.80%
发文量
196
审稿时长
4-8 weeks
期刊介绍: Nature Nanotechnology is a prestigious journal that publishes high-quality papers in various areas of nanoscience and nanotechnology. The journal focuses on the design, characterization, and production of structures, devices, and systems that manipulate and control materials at atomic, molecular, and macromolecular scales. It encompasses both bottom-up and top-down approaches, as well as their combinations. Furthermore, Nature Nanotechnology fosters the exchange of ideas among researchers from diverse disciplines such as chemistry, physics, material science, biomedical research, engineering, and more. It promotes collaboration at the forefront of this multidisciplinary field. The journal covers a wide range of topics, from fundamental research in physics, chemistry, and biology, including computational work and simulations, to the development of innovative devices and technologies for various industrial sectors such as information technology, medicine, manufacturing, high-performance materials, energy, and environmental technologies. It includes coverage of organic, inorganic, and hybrid materials.
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